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首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Soft constraints in nonlinear spectral fitting with regularized lineshape deconvolution
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Soft constraints in nonlinear spectral fitting with regularized lineshape deconvolution

机译:具有正则线形反褶积的非线性频谱拟合中的软约束

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摘要

This article presents a novel method for incorporating a priori knowledge into regularized nonlinear spectral fitting as soft constraints. Regularization was recently introduced to lineshape deconvolution as a method for correcting spectral distortions. Here, the deconvoluted lineshape was described by a new type of lineshape model and applied to spectral fitting. The nonlinear spectral fitting was carried out in two steps that were subject to hard constraints and soft constraints, respectively. The hard constraints step provided a starting point and, therefore, only the changes of the relevant variables were constrained in the soft constraints step and incorporated into the linear substeps of the Levenberg-Marquardt algorithm. The method was demonstrated using localized averaged echo time point resolved spectroscopy proton spectroscopy of human brains.
机译:本文提出了一种新颖的方法,可以将先验知识作为软约束纳入正则化的非线性光谱拟合中。最近,正则化被引入到线形去卷积中,作为校正频谱失真的一种方法。在此,通过一种新型线形模型描述了去卷积线形,并将其应用于光谱拟合。非线性光谱拟合分两步进行,分别受到硬约束和软约束。硬约束步骤提供了一个起点,因此,只有相关变量的变化才在软约束步骤中受到约束,并被合并到Levenberg-Marquardt算法的线性子步骤中。使用人脑的局部平均回波时间点分辨光谱质子光谱法证明了该方法。

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